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Mgr Engineering, Data and AI

Federal Express Corporation
USA: $9,208.38/mo - $20,872.33/mo, CO: $9,208.38/mo - $20,002.65/mo, CA: $9,719.96/mo - $16,575.08/mo, NJ: $9,719.96/mo - $15,551.93/mo, OH & VT: $9,719.96/mo - $16,523.93/mo, MN: $9,719.96/mo - $19,132.97/mo, IL & NV: $9,719.96/mo - $20,002.65/mo
United States, California, Los Angeles
6361 Wilshire Boulevard (Show on map)
Apr 25, 2026

Takes ownership and responsibility for the support the design, build, test and maintain data pipelines at big data scale. Leads a team responsible for modeling and development to support operations initiatives, strategic programs and new products and solutions. Strong background and experience in the use of advanced descriptive, diagnostic, predictive, prescriptive and ensemble modeling, advanced statistical techniques, and complex mathematical tools. Uses expertise to lead a team that initiates and delivers projects and develops end-to-end solutions that drive business results, including proofs-of-value for new business problems and production-ready solutions for operations and customer-facing products. Understands and ensures development of solutions supporting the movement of data and information assets following API-First / Service-Oriented Architecture principles. Advances Dataworks' broad capabilities to use and deploy cutting edge data science and machine learning tools in Dataworks projects, platforms and products. Provides expert consultation and thought leadership to senior management. Mentors other team members to drive results and effectively collaborates with cross-functional teams to deliver business goals.

Functions, Knowledge, and Skills

About the Role -

The Manager of Data and AI Engineering leads and mentors a high-performing team responsible for designing, developing, deploying, and operationalizing enterprise-grade data and artificial intelligence solutions. This role bridges business priorities with technical execution, translating strategic objectives into scalable engineering roadmaps for data pipelines, MLOps frameworks, and production-ready AI systems. The Manager is accountable for the delivery of reliable, governed, secure and maintainable solutions that enable intelligent automation, predictive insight, and advanced analytics across the organization. By fostering engineering excellence, collaborating closely with data science, product, and business leaders, and growing technical talent, this position plays a critical role in scaling the organization's ability to leverage data and AI effectively while ensuring alignment with enterprise architecture and responsible AI standards.

Leadership & Team Development

  • People Leadership: Proven experience managing, mentoring, and developing high-performing technical teams, with a strong ability to guide Data Engineers, Machine Learning Engineers, and AI Engineers through complex challenges.
  • Talent Management: Demonstrated ownership of the full talent lifecycle, including attracting, hiring, and onboarding top technical talent, as well as managing performance and fostering career development.
  • Proactive Ownership: A self-starter mentality with a proactive approach to identifying and solving problems, driving initiatives forward, and inspiring a culture of excellence and accountability within the team.

Technical Strategy & Expertise

  • Strategic Vision & Road mapping: Ability to think strategically and operate effectively within ambiguous environments, translating complex business requirements into clear technical roadmaps and end-to-end architectural designs.
  • Technical Depth & Architectural Design: Strong technical background and decision-making authority across the full AI stack, with hands-on proficiency in:
  • Data Engineering & Platforms: ETL/ELT, data warehousing, and big data technologies (e.g., Spark).
  • ML System Design: Architecting scalable and maintainable machine learning systems.
  • MLOps Practices: CI/CD, containerization (Docker, Kubernetes), automated model monitoring, feature stores, and lifecycle governance.
  • Cloud Platforms: Deep knowledge of modern data stacks and cloud services (GCP, AWS, Azure), particularly their AI/ML offerings (e.g., Vertex AI, SageMaker, Azure ML).
  • Generative AI Expertise: Deep conceptual and practical understanding of how generative AI systems work, with the ability to guide teams in designing efficient prompts and interactions to optimize model performance, accuracy, and cost.
  • Economic & Pragmatic Judgment: Strong command of AI cost dynamics (e.g., tokenization, request patterns) to implement effective cost-optimization strategies. Critically evaluates when AI is not the right solution and directs teams toward simpler, more efficient alternatives.

Responsible AI & Enterprise Governance

  • Experience implementing enterprise standards for responsible AI, including model governance, fairness, explainability, and security.
  • Responsible for preventing redundant or fragmented AI solutions by driving standardization and ensuring new systems integrate seamlessly with existing enterprise APIs and data ecosystems.
  • Risk Management for Automated Systems: Understanding of the risks associated with agent-based systems (e.g., cascading failures, uncontrolled API interactions) and the ability to design and enforce robust safeguards such as rate limiting, bounded execution, and controlled data access.

Execution & Collaboration

  • Effective Communication: Exceptional communication and stakeholder management skills, with a proven ability to articulate complex technical concepts,
  • risks, and outcomes to both technical and non-technical audiences, from individual contributors to senior leadership.
  • Cross-Functional Collaboration: A natural ability to collaborate effectively across the organization, navigate complex stakeholder relationships, build consensus, and foster alignment even in challenging situations.
  • Disciplined Execution: Promotes disciplined engineering practices over rapid experimentation when transitioning solutions to production, ensuring all AI solutions are evaluated for scalability, maintainability, and seamless integration within the broader enterprise ecosystem.
  • Ecosystem Integration: Ensures that AI solutions are designed to integrate with existing enterprise systems, APIs, and data ecosystems, avoiding the creation of isolated or siloed implementations.
  • Agile Project Management: Excellent understanding of Agile/Scrum methodologies for managing technical projects, engineering backlogs, and delivering results

Minimum Education

Bachelor's Degree in Information Systems, Computer Science, or a quantitative discipline such as Mathematics or Engineering and/or equivalent formal training or work experience.

Minimum Experience

Five to eight (5-8) years equivalent work experience in measurement and analysis, quantitative business problem solving, simulation development and/or predictive analytics. Extensive knowledge in data engineering and machine learning frameworks including design, development and implementation of highly complex systems and data pipelines. Extensive knowledge in Information Systems including design, development and implementation of large batch or online transaction-based systems. Strong understanding of the transportation industry, competitors, and evolving technologies. Experience providing leadership in a general planning or consulting setting. Experience as a leader or a senior member of multi-function project teams. Strong oral and written communication skills. A related advanced degree may offset the related experience requirements.

Domicile Information

This position is hybrid in Dallas TX, Memphis TN, or another corporate FedEx office. The ability to work remotely within the United States may be available based on business need.

Preferred Qualifications:

Pay Transparency:

Pay: USA: $9,208.38/mo - $20,872.33/mo, CO: $9,208.38/mo - $20,002.65/mo, CA: $9,719.96/mo - $16,575.08/mo, NJ: $9,719.96/mo - $15,551.93/mo, OH & VT: $9,719.96/mo - $16,523.93/mo, MN: $9,719.96/mo - $19,132.97/mo, IL & NV: $9,719.96/mo - $20,002.65/mo

Additional Details:

Pay Transparency:

The compensation listed reflects the pay range or rate of pay reasonably expected for this posted position at the posted location or locations.  If this opportunity includes multiple job levels, the pay information represents the ranges for each level in that job family. Actual pay is determined by several job-related factors permitted by law and relevant to the position, including, but not limited to, experience relative to the job, tenure, market level, pay at the location for this job, performance, schedule, and work assignment. In California, the compensation listed reflects the range or rate of pay reasonably expected for this posted position upon hire.

For details on our comprehensive benefits, click here.

Federal Express Corporation is an Equal Opportunity Employer including, Vets/Disability.

Reasonable accommodations are available for qualified individuals with disabilities throughout the application process. Applicants who require reasonable accommodations in the application or hiring process should contact recruitmentsupport@fedex.com.

Applicants have rights under Federal Employment Laws:

  • Know Your Rights
  • Pay Transparency
  • Family and Medical Leave Act (FMLA)
  • Employee Polygraph Protection Act

E-Verify Program Participant: Federal Express Corporation participates in the Department of Homeland Security U.S. Citizenship and Immigration Services' E-Verify program (For U.S. applicants and employees only). Please click below to learn more about the E-Verify program:

  • E-Verify Notice (bilingual)
  • Right to Work Notice (English) / (Spanish)

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